Yang Wen, Guo Jian, Hee Samual, Chen Yu
College of Chemistry and Chemical Engineering, Jiangxi Province Engineering Research Center of Ecological Chemical Industry, Jiujiang Key Laboratory of Organosilicon Chemistry and Application, Jiujiang University, Jiujiang, 332005, People's Republic of China.
Department of Chemistry and Biochemistry, Queens College of the City University of New York, 65-30 Kissena Blvd., Queens, New York 11367, USA.
Adv Synth Catal. 2025 Apr 1;367(7). doi: 10.1002/adsc.202401486. Epub 2025 Feb 11.
Over the past two decades, iodine-mediated free radical reactions have been extensively explored and employed in chemical transformations that complement traditional ionic reactions. In this review, we have updated the progress of the iodine-mediated radical reactions in organic synthesis reported between 2015 and mid-2024, and organized the reactions according to their mechanistic pathways. In general, the proposed mechanisms can be divided into four categories based on the radical initiation or its preceding steps, namely, (1) formation of a covalent X-I (X=C, N, S, Se) bond, which subsequently participates in a radical reaction; (2) formation of a noncovalent N···I bond, which assists the homolysis of the I-I bond; (3) formation of the key iodine radicals by visible-light or heat induced homolysis of I or by electrochemical oxidation of iodide; (4) iodine induced peroxide decomposition single electron transfer (SET) mechanism to generate alkoxy or alkyl peroxy radicals. We hope this review will provide readers with a comprehensive update on the iodine-mediated radical reactions, thereby further inspiring more exciting advances in this emerging field.
在过去二十年中,碘介导的自由基反应已得到广泛探索,并应用于补充传统离子反应的化学转化中。在本综述中,我们更新了2015年至2024年年中报道的碘介导的自由基反应在有机合成中的进展,并根据其反应机理途径对这些反应进行了整理。一般来说,根据自由基引发或其之前的步骤,所提出的机理可分为四类,即:(1)形成共价X-I(X = C、N、S、Se)键,该键随后参与自由基反应;(2)形成非共价N···I键,其有助于I-I键的均裂;(3)通过可见光或热诱导I的均裂或碘化物的电化学氧化形成关键碘自由基;(4)碘诱导过氧化物分解单电子转移(SET)机理以生成烷氧基或烷基过氧自由基。我们希望本综述能为读者提供关于碘介导的自由基反应的全面更新,从而进一步激发这一新兴领域取得更多令人兴奋的进展。